PCl5 is introduced into an evacuated chamber and comes to equilibrium (see Problem 16.37), at 250◦C and 2.00 atm. The equilibrium gas contains 40.7% Cl2 by volume. (a1) What are the partial pressures of the gaseous components at equilibrium? (a2) From these data, calculate Kp at 250◦C on the basis of the 1 atm standard state for the reaction written in Problem 16.37. If the volume of the gas mixture is increased so that it is at 0.200 atm at 250◦C, calculate: (b1) The percent of PCl5 that would be dissociated at equilibrium. (b2) The percent by volume of Cl2 at equilibrium. (b3) The partial pressure of Cl2 at equilibrium

Question

The answers are: (a1) P(Cl2) = P(PCl3) = 0.814 atm, P(PCl5) = 0.372 atm; (a2) 1.78 (b1) 94.8%; (b2) 48.7%; (b3) 0.0974 atm

I was able to solve parts a1 and a2, but b1 and beyond had me stumped. could someone explain how to solve b1,b2, and b3?

Joe johnson · Answer

forgot to include the equation required to do this problem, The equation is PCl5 (g) <-> PCl3(g) + Cl2(g)

DrBob222 · Answer

I agree with the answers for a1 and a2. Here is b2 and b3.
..........PCl5 ==> PCl3 + Cl2
I.........0.2.......0......0
C........-2p........p......p
E........0.2-2p.....p......p

Kp = 1.78 = p*p/(0.2-2p)
Solve for p. I obtained 0.0973 which is pCl2 for b(3). b(2) is volume % = XCl2 = 0.0973/0.2 = 0.487 or 48.7%.
I did not work b1 (at least I didn't get 94.8%).

joe johnson · Answer

hello drbob222, I was just wondering why you subtracted by 2p instead of just p in the C section of your ICE table. wouldn't it just be p?

DrBob222 · Answer

pCl2 = pPCl3 = p
Ptotal = pCl2 + pPCl3 + pPCl5
0.2 = p + p + pPCl5
0.2-2p = pPCl5

a. Didn't you use 2-2p to arrive at the correct answer of 1.78 for Kp?
pCl2 is 0.814. pPCl3 = 0.814. pPCl5 = 0.372 so (0.814)(0.814)/0.372 = 1.78 = Kp.

b. Try it with 0.2-p and you get p = 0.181. Then Total P will be 0.181 + 0.181 + pPCl5 BUT 2*0.181 (= 0.362) is already more than you started with of 0.2.